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Lecture notes in deep learning : theoretical insights into an artificial mind

By: Contributor(s): Material type: TextTextLanguage: English Publication details: New Jersey; World Scientific Publishing Co. Pte. Ltd., 2026.Description: xv, 301pISBN:
  • 9789811280627
Subject(s): DDC classification:
  • 006.31 DUB-L
Summary: The compendium provides an introduction to the theory of deep learning, from basic principles of neural network modeling and optimization to more advanced topics of neural networks as Gaussian processes, neural tangent and information theory.This unique reference text complements a largely missing theoretical introduction to neural networks without being overwhelmingly technical in a level accessible to upper-level undergraduate engineering students.Advanced chapters were designed to offer an additional intuition into the field by explaining deep learning from statistical and information theory perspectives. The book further provides additional intuition to the field by relating it to other statistical and information modeling approaches.Summary: Introduces the theoretical foundations of deep learning and artificial intelligence. The book explains neural networks, machine learning models, mathematical principles, optimization, representation learning, and the development of artificial intelligence systems with emphasis on conceptual understanding and practical implementation.
Item type: Books and Monographs
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Item type Current library Home library Collection Call number Materials specified Status Date due Barcode
Books and Monographs Central Library, NIT Jalandhar General Stacks Central Library, NIT Jalandhar Industrial and Production Engineering 006.31 DUB-L (Browse shelf(Opens below)) Available 102986
Books and Monographs Central Library, NIT Jalandhar General Stacks Central Library, NIT Jalandhar Industrial and Production Engineering 006.31 DUB-L (Browse shelf(Opens below)) Available 102995

The compendium provides an introduction to the theory of deep learning, from basic principles of neural network modeling and optimization to more advanced topics of neural networks as Gaussian processes, neural tangent and information theory.This unique reference text complements a largely missing theoretical introduction to neural networks without being overwhelmingly technical in a level accessible to upper-level undergraduate engineering students.Advanced chapters were designed to offer an additional intuition into the field by explaining deep learning from statistical and information theory perspectives. The book further provides additional intuition to the field by relating it to other statistical and information modeling approaches.

Introduces the theoretical foundations of deep learning and artificial intelligence. The book explains neural networks, machine learning models, mathematical principles, optimization, representation learning, and the development of artificial intelligence systems with emphasis on conceptual understanding and practical implementation.

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